An overview of additively manufactured metal matrix composites: preparation, performance, and challenge

Liang-Yu Chen, P. Qin, Lina Zhang, Lai-Chang Zhang
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Abstract

Metal matrix composites (MMCs) are frequently employed in various advanced industries due to their high modulus and strength, favorable wear and corrosion resistance, and other good properties at elevated temperatures. In recent decades, additive manufacturing (AM) technology has garnered attention as a potential way for fabricating MMCs. This article provides a comprehensive review of recent endeavors and progress in additive manufacturing of MMCs, encompassing available AM technologies, types of reinforcements, feedstock preparation, synthesis principles during the AM process, typical AM-produced MMCs, strengthening mechanisms, challenges and future interests. Compared to conventionally manufactured MMCs, AM-produced MMCs exhibit more uniformly distributed reinforcements and refined microstructure, resulting in comparable or even better mechanical properties. In addition, AM technology can produce bulk MMCs with significantly low porosity and fabricate geometrically complex MMC components and MMC lattice structures. As reviewed, many AM-produced MMCs, such as Al matrix composites, Ti matrix composites, Nickel matrix composites, Fe matrix composites, etc., have been successfully produced. The types and contents of reinforcements strongly influence the properties of AM-produced MMCs, the choice of AM technology, and the applied processing parameters. In these MMCs, four primary strengthening mechanisms have been identified: Hall-Petch strengthening, dislocation strengthening, load transfer strengthening, and Orowan strengthening. AM technologies offer advantages that enhance the properties of MMCs when compared with traditional fabrication methods. Despite the advantages above, further challenges of AM-produced MMCs are still faced, such as new methods and new technologies for investigating AM-produced MMCs, the intrinsic nature of MMCs coupled with AM technologies, and challenges in the AM processes. Therefore, the article concludes by discussing the challenges and future interests of additive manufacturing of MMCs.
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快速成型金属基复合材料概述:制备、性能和挑战
金属基复合材料(MMC)具有高模量、高强度、良好的耐磨性和耐腐蚀性,以及在高温下的其他良好性能,因此经常被用于各种先进的工业领域。近几十年来,增材制造(AM)技术作为一种制造 MMC 的潜在方法备受关注。本文全面综述了最近在增材制造 MMC 方面的努力和进展,包括现有的增材制造技术、增强材料类型、原料制备、增材制造过程中的合成原理、典型的增材制造 MMC、增强机制、挑战和未来发展方向。与传统制造的 MMC 相比,AM 生产的 MMC 具有分布更均匀的增强材料和更精细的微观结构,因而具有相当甚至更好的机械性能。此外,AM 技术还能生产出孔隙率极低的块状 MMC,并能制造出几何形状复杂的 MMC 部件和 MMC 晶格结构。综上所述,许多 AM 生产的 MMC(如铝基复合材料、钛基复合材料、镍基复合材料、铁基复合材料等)都已成功生产。增强材料的类型和含量对 AM 生产的 MMC 的性能、AM 技术的选择和应用的加工参数有很大影响。在这些 MMC 中,已确定了四种主要的强化机制:霍尔-佩奇强化、位错强化、载荷传递强化和奥罗万强化。与传统制造方法相比,AM 技术具有增强 MMC 特性的优势。尽管有上述优势,AM 生产的 MMC 仍面临更多挑战,如研究 AM 生产的 MMC 的新方法和新技术、MMC 与 AM 技术结合的内在性质以及 AM 过程中的挑战。因此,文章最后讨论了增材制造 MMCs 所面临的挑战和未来的发展方向。
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